[0001] The present invention relates to an aerosol-generating article comprising a capacitor,
and an aerosol-generating system comprising the aerosol-generating article.
[0002] One type of aerosol-generating system is an electrically operated smoking system.
Known handheld electrically operated smoking systems typically comprise an aerosol-generating
device comprising a battery, control electronics and an electric heater for heating
an aerosol-generating article designed specifically for use with the aerosol-generating
device. In some examples, the aerosol-generating article comprises an aerosol-generating
substrate, such as a tobacco rod or a tobacco plug, and the heater contained within
the aerosol-generating device is inserted into or around the aerosol-generating substrate
when the aerosol-generating article is inserted into the aerosol-generating device.
In an alternative electrically operated smoking system, the aerosol-generating article
may comprise a capsule containing an aerosol-generating substrate, such as loose tobacco.
[0003] US 2014/096781 A1 describes an electronic cigarette having a cartomiser comprising a liquid reservoir,
a wick extending into the liquid reservoir, and a heater arranged to heat the wick.
US 2014/096781 A1 describes the use of a capacitive sensor to monitor a saturation level of the wick.
[0004] Aerosol-generating substrates, such as tobacco, typically comprise one or more volatile
compounds that form an aerosol when heated inside the aerosol-generating device. During
continuous heating inside an aerosol-generating device the volatile compounds are
depleted from the aerosol-generating substrate until the level of volatile compounds
remaining within the aerosol-generating substrate may be insufficient to support adequate
aerosol generation, which may lead to a diminished smoking experience for a consumer.
[0005] Accordingly, it would be desirable to provide an aerosol-generating article that
enables monitoring of the levels of volatile compounds remaining in an aerosol-generating
substrate during heating of the aerosol-generating substrate.
[0006] According to a first aspect of the present invention there is provided an aerosol-generating
article comprising an aerosol-generating substrate and a capacitor. The aerosol-generating
substrate comprises tobacco and is non-liquid at room temperature. The capacitor comprises
a first electrode, a second electrode, and a dielectric material positioned between
the first electrode and the second electrode. The dielectric material comprises a
porous substrate material and a liquid sorbed into the porous substrate material.
[0007] As used herein, the term "aerosol-generating article" refers to an article comprising
an aerosol-generating substrate that, when heated, releases volatile compounds that
can form an aerosol. The aerosol-generating substrate is non-liquid at room temperature,
where room temperature is 20 degrees Celsius.
[0008] Aerosol-generating articles according to the present invention advantageously comprise
a capacitor in which the dielectric material comprises a porous substrate material
and a liquid sorbed into the porous substrate material. Advantageously, when the aerosol-generating
article is heated during use, for example in an aerosol-generating device, the liquid
sorbed into the porous substrate material evaporates. Evaporation of the liquid from
the dielectric material results in a change in the permittivity of the dielectric
material, which in turn results in a change in the capacitance between the first electrode
and the second electrode. The change in capacitance between the first electrode and
the second electrode can advantageously be used to give an indication of the amount
of one or more volatile compounds remaining in the aerosol-generating substrate.
[0009] As discussed in more detail below, the dielectric material may be separate from the
aerosol-generating substrate. In such embodiments, measuring the change in capacitance
between the first electrode and the second electrode may provide an indirect measurement
of the amount of one or more volatile compounds remaining in the aerosol-generating
substrate based on a known correlation between the rate of loss of liquid from the
dielectric material and the rate of loss of volatile compounds from the aerosol-generating
substrate when the aerosol-generating article is heated using a known aerosol-generating
device.
[0010] Alternatively, as discussed in more detail below, at least part of the aerosol-generating
substrate may form the dielectric material. In such embodiments, measuring the change
in capacitance between the first electrode and the second electrode may provide a
more direct measurement of the amount of one or more volatile compounds remaining
in the aerosol-generating substrate.
[0011] Using a capacitor to monitor the amount of one or more volatile compounds remaining
in the aerosol-generating substrate advantageously facilitates the use of a heating
cycle of length appropriate to the aerosol-generating substrate. For example, an aerosol-generating
device may be configured to cease heating of the aerosol-generating article when the
capacitance, or a change in capacitance, reaches a predetermined threshold indicative
of a substantial depletion of the one or more volatile compounds from the aerosol-generating
substrate. Preventing further heating of the aerosol-generating article when the one
or more volatile compounds have been depleted from the aerosol-generating substrate
may prevent the onset of a diminished smoking experience for a consumer. Preventing
further heating of the aerosol-generating article when the one or more volatile compounds
have been depleted from the aerosol-generating substrate may reduce the risk of accidental
combustion of the aerosol-generating substrate due to overheating as the aerosol-generating
substrate becomes dry.
[0012] The aerosol-generating article may comprise a wrapper wrapped around the aerosol-generating
substrate, wherein the capacitor is provided on an outer surface of the wrapper. Providing
the capacitor on an outer surface of a wrapper may facilitate the addition of a capacitor
to existing aerosol-generating articles with minimal modification to existing high
speed manufacturing machines and processes. For example, in some embodiments the aerosol-generating
substrate may comprise a tobacco plug or a tobacco rod and the wrapper may comprise
a cigarette paper wrapper around the tobacco. In such embodiments, the capacitor may
be preformed in an offline process and subsequently secured to an outer surface of
the wrapper in a final stage of the manufacture of the aerosol-generating article.
Alternatively, the first electrode, the dielectric material and the second electrode
can be separately provided and secured to the aerosol-generating article so that the
capacitor is formed in situ on the wrapper.
[0013] Preferably, the first electrode overlies at least a portion of the wrapper, wherein
the dielectric material overlies a first portion of the first electrode, wherein the
second electrode overlies at least a portion of the dielectric material, and wherein
the first electrode comprises a second portion that does not underlie either the dielectric
material or the second electrode. Providing the first electrode with a second portion
that does not underlie either the dielectric material or the second electrode may
facilitate connection of the first electrode to a corresponding electrical contact
of an aerosol-generating device when the aerosol-generating article is combined with
the aerosol-generating device to form an aerosol-generating system.
[0014] As used herein, the terms 'inner', 'outer', 'underlie' and 'overlie' are used to
refer to relative positions of components of the aerosol-generating article, or parts
of components of the aerosol-generating article. For example, an inner surface of
a component faces toward an interior of the article and an outer surface of a component
faces toward the exterior of the article. Similarly, in an example in which a first
component underlies a second component, the first component is positioned closer to
the interior of the article than the second component. In such an example, the second
component overlies the first component.
[0015] Alternatively, the aerosol-generating article may comprise a wrapper wrapped around
the aerosol-generating substrate, wherein the first electrode underlies at least a
portion of the wrapper, wherein the second electrode overlies at least a portion of
the wrapper, and wherein the portion of the wrapper positioned between the first electrode
and the second electrode forms the dielectric material. In such embodiments, using
at least a portion of the wrapper to form the dielectric material eliminates the need
to provide a separate dielectric material to form the capacitor.
[0016] The wrapper may be formed from a cellulosic material, such as a paper. For example,
the wrapper may be a cigarette paper. In these embodiments, the solid components of
the cellulosic material form the porous substrate material. The liquid sorbed into
the porous substrate material may comprise the residual moisture content of the cellulosic
material after the wrapper has been formed using a conventional paper-making process,
such as a wet-laying process. Additionally, or alternatively, a liquid may be added
to the paper after the paper has been formed. The liquid may comprise water.
[0017] In a further alternative, the aerosol-generating article may comprise a wrapper wrapped
around the aerosol-generating substrate, wherein the capacitor is positioned between
the wrapper and the aerosol-generating substrate. Positioning the capacitor between
the wrapper and the aerosol-generating substrate may protect the capacitor from damage
during post-manufacture handling of the aerosol-generating article.
[0018] To facilitate connection of the first and second electrodes to corresponding electrical
contacts on an aerosol-generating device, preferably at least a portion of each of
the first and second electrodes is exposed. For example, the wrapper may comprise
at least one aperture through which at least a portion of the first and second electrodes
can be contacted by corresponding electrical contacts on an aerosol-generating device.
[0019] In any of the embodiments described above, the aerosol-generating substrate may have
a substantially cylindrical shape, wherein the capacitor has a substantially annular
shape and circumscribes at least a portion of the aerosol-generating substrate. Providing
a capacitor having a substantially annular shape may advantageously eliminate the
need to maintain a specific rotational orientation of the aerosol-generating article
upon insertion into an aerosol-generating device. That is, an annular capacitor may
facilitate connection of the first and second electrodes to corresponding electrical
contacts on an aerosol-generating device in any rotational orientation of the aerosol-generating
article.
[0020] In a yet further alternative set of embodiments, at least a portion of the aerosol-generating
substrate may be positioned between the first electrode and the second electrode so
that the portion of the aerosol-generating substrate positioned between the first
electrode and the second electrode forms the dielectric material. Such embodiments
advantageously eliminate the need to provide a separate dielectric material. Such
embodiments advantageously facilitate a more direct measurement of the depletion of
volatile compounds from the aerosol-generating substrate by measuring the change in
capacitance between the first electrode and the second electrode.
[0021] In any of the embodiments described above, the aerosol-generating substrate is preferably
a solid aerosol-generating substrate. The aerosol-generating substrate preferably
comprises a tobacco-containing material containing volatile tobacco flavour compounds
which are released from the substrate upon heating. The aerosol-generating substrate
may comprise tobacco-containing material and non-tobacco containing material.
[0022] The solid aerosol-generating substrate may comprise, for example, one or more of:
powder, granules, pellets, shreds, strands, strips or sheets containing one or more
of: herb leaf, tobacco leaf, tobacco ribs, expanded tobacco and homogenised tobacco.
[0023] Optionally, the solid aerosol-generating substrate may contain tobacco or non-tobacco
volatile flavour compounds, which are released upon heating of the solid aerosol-generating
substrate. The solid aerosol-generating substrate may also contain one or more capsules
that, for example, include additional tobacco volatile flavour compounds or non-tobacco
volatile flavour compounds and such capsules may melt during heating of the solid
aerosol-generating substrate.
[0024] Optionally, the solid aerosol-generating substrate may be provided on or embedded
in a thermally stable carrier. The carrier may take the form of powder, granules,
pellets, shreds, strands, strips or sheets. The solid aerosol-generating substrate
may be deposited on the surface of the carrier in the form of, for example, a sheet,
foam, gel or slurry. The solid aerosol-generating substrate may be deposited on the
entire surface of the carrier, or alternatively, may be deposited in a pattern in
order to provide a non-uniform flavour delivery during use.
[0025] As used herein, the term 'homogenised tobacco material' denotes a material formed
by agglomerating particulate tobacco.
[0026] As used herein, the term 'sheet' denotes a laminar element having a width and length
substantially greater than the thickness thereof.
[0027] As used herein, the term 'gathered' is used to describe a sheet that is convoluted,
folded, or otherwise compressed or constricted substantially transversely to a longitudinal
axis of the aerosol-generating article.
[0028] In a preferred embodiment, the aerosol-generating substrate comprises a gathered
textured sheet of homogenised tobacco material.
[0029] As used herein, the term 'textured sheet' denotes a sheet that has been crimped,
embossed, debossed, perforated or otherwise deformed. The aerosol-generating substrate
may comprise a gathered textured sheet of homogenised tobacco material comprising
a plurality of spaced-apart indentations, protrusions, perforations or a combination
thereof.
[0030] In a particularly preferred embodiment, the aerosol-generating substrate comprises
a gathered crimped sheet of homogenised tobacco material.
[0031] Use of a textured sheet of homogenised tobacco material may advantageously facilitate
gathering of the sheet of homogenised tobacco material to form the aerosol-generating
substrate.
[0032] As used herein, the term crimped sheet' denotes a sheet having a plurality of substantially
parallel ridges or corrugations. Preferably, the substantially parallel ridges or
corrugations extend along or parallel to a longitudinal axis of the aerosol-generating
article. This advantageously facilitates gathering of the crimped sheet of homogenised
tobacco material to form the aerosol-generating article. However, it will be appreciated
that crimped sheets of homogenised tobacco material for inclusion in the aerosol-generating
article may alternatively or in addition have a plurality of substantially parallel
ridges or corrugations that are disposed at an acute or obtuse angle to the longitudinal
axis of the aerosol-generating article.
[0033] As used herein, the term 'aerosol former' is used to describe any suitable known
compound or mixture of compounds that, in use, facilitates formation of an aerosol
and that is substantially resistant to thermal degradation at the operating temperature
of the aerosol-generating article.
[0034] Suitable aerosol-formers include, but are not limited to: polyhydric alcohols, such
as propylene glycol, triethylene glycol, 1,3-butanediol and glycerine; esters of polyhydric
alcohols, such as glycerol mono-, di- or triacetate; and aliphatic esters of mono-,
di- or polycarboxylic acids, such as dimethyl dodecanedioate and dimethyl tetradecanedioate
Preferred aerosol formers are polyhydric alcohols or mixtures thereof, such as propylene
glycol, triethylene glycol, 1,3-butanediol and, most preferred, glycerine.
[0035] The aerosol-generating substrate may comprise a single aerosol former. Alternatively,
the aerosol-generating substrate may comprise a combination of two or more aerosol
formers.
[0036] The aerosol-generating substrate may have an aerosol former content of greater than
5 percent on a dry weight basis.
[0037] The aerosol aerosol-generating substrate may have an aerosol former content of between
approximately 5 percent and approximately 30 percent on a dry weight basis.
[0038] The aerosol-generating substrate may have an aerosol former content of approximately
20 percent on a dry weight basis.
[0039] In a further alternative set of embodiments, the aerosol-generating article may comprise
a capsule defining a compartment in which the aerosol-generating substrate is received,
wherein the capacitor is provided on an outer surface of the capsule.
[0040] Preferably, the capsule comprises a base, a substantially cylindrical wall extending
from the base, and an open end opposite the base. The aerosol-generating article further
comprises a seal connected to the capsule and extending across the open end to seal
the aerosol-generating substrate within the compartment, wherein the capacitor is
provided on the base of the capsule.
[0041] Providing the capacitor on the base of such a capsule can facilitate reliable and
secure contact between the first and second electrodes and corresponding electrical
contacts in an aerosol-generating device into which the aerosol-generating article
is inserted.
[0042] For example, the base is preferably substantially circular, wherein the first electrode
overlies at least a portion of the base, wherein the dielectric material overlies
a first portion of the first electrode, wherein the second electrode overlies at least
a portion of the dielectric material and overlies the centre of the substantially
circular base, and wherein the first electrode comprises a second portion that does
not underlie either the dielectric material or the second electrode, the second portion
being spaced apart from the centre of the substantially circular base. Providing the
first electrode with a second portion that does not underlie either the dielectric
material or the second electrode may facilitate connection of the first electrode
to a corresponding electrical contact of an aerosol-generating device when the aerosol-generating
article is combined with the aerosol-generating device to form an aerosol-generating
system.
[0043] Preferably, the first and second electrodes are configured to facilitate contact
between the first and second electrode and corresponding electrical contacts on an
aerosol-generating device regardless of the rotational orientation of the substantially
circular base when the aerosol-generating article is inserted into the aerosol-generating
device. For example, the first and second electrodes may be configured to engage with
concentric circular or annular electrical contacts provided in an aerosol-generating
device.
[0044] Additionally, or alternatively, the first electrode may have a substantially circular
shape that concentrically overlies at least a portion of the base, wherein the dielectric
material has a substantially circular shape and concentrically overlies the first
portion of the first electrode, wherein the second electrode has a substantially circular
shape and concentrically overlies at least a portion of the dielectric material, and
wherein a diameter of the first electrode is larger than a diameter of the dielectric
material and the second electrode so that the second portion of the first electrode
has an annular shape provided concentrically on the substantially circular base. Such
embodiments may eliminate the need for providing concentric electrical contacts on
an aerosol-generating device by providing concentric first and second electrodes that
can permit any rotational orientation of the aerosol-generating article with respect
to the aerosol-generating device.
[0045] In those embodiments in which the aerosol-generating article comprises a capsule
defining a compartment in which the aerosol-generating substrate is received, preferably
the aerosol-generating substrate comprises tobacco, more preferably at least one of
pipe tobacco, cut filler, reconstituted tobacco, homogenised tobacco, and combinations
thereof.
[0046] The aerosol-generating substrate may comprise an aerosol-former. The aerosol-generating
substrate preferably comprises homogenised tobacco material, an aerosol-former and
water. Providing homogenised tobacco material may improve aerosol generation, the
nicotine content and the flavour profile of the aerosol generated during heating of
the aerosol-generating article. Specifically, the process of making homogenised tobacco
involves grinding tobacco leaf, which more effectively enables the release of nicotine
and flavours upon heating.
[0047] The homogenised tobacco material is preferably provided in sheets which are one of
folded, crimped, or cut into strips. In a particularly preferred embodiment, the sheets
are cut into strips having a width of between about 0.2 millimetres and about 2 millimetres,
more preferably between about 0.4 millimetres and about 1.2 millimetres. In one embodiment,
the width of the strips is about 0.9 millimetres.
[0048] Alternatively, the homogenised tobacco material may be formed into spheres using
spheronisation. The mean diameter of the spheres is preferably between about 0.5 millimetres
and about 4 millimetres, more preferably between about 0.8 millimetres and about 3
millimetres.
[0049] The aerosol-generating substrate preferably comprises: homogenised tobacco material
between about 55 percent and about 75 percent by weight; aerosol-former between about
15 percent and about 25 percent by weight; and water between about 10 percent and
about 20 percent by weight.
[0050] Before measuring the samples of aerosol-generating substrate they are equilibrated
for 48 hours at 50 percent relative humidity at 22 degrees Celsius. The Karl Fischer
technique is used to determine the water content of the homogenised tobacco material.
[0051] The aerosol-generating substrate may further comprise a flavourant between about
0.1 percent and about 10 percent by weight. The flavourant may be any suitable flavourant
known in the art, such as menthol.
[0052] Sheets of homogenised tobacco material for use in aerosol-generating articles comprising
a capsule may be formed by agglomerating particulate tobacco obtained by grinding
or otherwise comminuting one or both of tobacco leaf lamina and tobacco leaf stems.
[0053] Sheets of homogenised tobacco material for use in aerosol-generating articles comprising
a capsule may comprise one or more intrinsic binders that is a tobacco endogenous
binder, one or more extrinsic binders that is a tobacco exogenous binder, or a combination
thereof to help agglomerate the particulate tobacco. Alternatively, or in addition,
sheets of homogenised tobacco material may comprise other additives including, but
not limited to, tobacco and non-tobacco fibres, flavourants, fillers, aqueous and
non-aqueous solvents and combinations thereof.
[0054] Suitable extrinsic binders for inclusion in sheets of homogenised tobacco material
for use in aerosol-generating articles comprising a capsule are known in the art and
include, but are not limited to: gums such as, for example, guar gum, xanthan gum,
arabic gum and locust bean gum; cellulosic binders such as, for example, hydroxypropyl
cellulose, carboxymethyl cellulose, hydroxyethyl cellulose, methyl cellulose and ethyl
cellulose; polysaccharides such as, for example, starches, organic acids, such as
alginic acid, conjugate base salts of organic acids, such as sodium-alginate, agar
and 30 pectins; and combinations thereof.
[0055] A number of reconstitution processes for producing sheets of homogenised tobacco
materials are known in the art. These include, but are not limited to: paper-making
processes of the type described in, for example,
US-A-3,860,012; casting or 'cast leaf processes of the type described in, for example,
US-A-5,724,998; dough reconstitution processes of the type described in, for example,
US-A-3,894,544; and extrusion processes of the type described in, for example, in
GB-A-983,928. Typically, the densities of sheets of homogenised tobacco material produced by extrusion
processes and dough reconstitution processes are greater than the densities of sheets
of homogenised tobacco materials produced by casting processes.
[0056] Sheets of homogenised tobacco material for use in aerosol-generating articles comprising
a capsule are preferably formed by a casting process of the type generally comprising
casting a slurry comprising particulate tobacco and one or more binders onto a conveyor
belt or other support surface, drying the cast slurry to form a sheet of homogenised
tobacco material and removing the sheet of homogenised tobacco material from the support
surface.
[0057] The homogenised tobacco sheet material may be produced using different types of tobacco.
For example, tobacco sheet material may be formed using tobaccos from a number of
different varieties of tobacco, or tobacco from different regions of the tobacco plant,
such as leaves or stem. After processing, the sheet has consistent properties and
a homogenised flavour. A single sheet of homogenised tobacco material may be produced
to have a specific flavour. To produce a product having a different flavour, a different
tobacco sheet material needs to be produced. Some flavours that are produced by blending
a large number of different shredded tobaccos in a conventional cigarette may be difficult
to replicate in a single homogenised tobacco sheet. For example, Virginia tobaccos
and Burley tobaccos may need to be processed in different ways to optimise their individual
flavours. It may not be possible to replicate a particular blend of Virginia and Burley
tobaccos in a single sheet of homogenised tobacco material. As such, the aerosol-generating
substrate may comprise a first homogenised tobacco material and a second homogenised
tobacco material. By combining two different sheets of tobacco material in a single
aerosol-generating substrate, new blends may be created that could not be produced
by a single sheet of homogenised tobacco.
[0058] The aerosol-former preferably comprises at least one polyhydric alcohol. In a preferred
embodiment, the aerosol-former comprises at least one of: triethylene glycol; 1,3-butanediol;
propylene glycol; and glycerine.
[0059] In any of the embodiments described above, the dielectric material may comprise a
paper sheet and the at least one liquid sorbed onto the paper sheet, particularly
in those embodiments described above in which the aerosol-generating article comprises
a wrapper, wherein at least a portion of the wrapper forms the dielectric material.
[0060] The solid components of the paper sheet form the porous substrate material. The liquid
sorbed into the porous substrate material may comprise the residual moisture content
of the paper after the paper has been formed using a conventional paper-making process,
such as a wet-laying process. Additionally, or alternatively, a liquid may be added
to the paper after the paper has been formed. The liquid may comprise water.
[0061] According to a second aspect of the present invention there is provided an aerosol-generating
article comprising an aerosol-generating substrate and a capacitor. The capacitor
comprises a first electrode, a second electrode, and a dielectric material positioned
between the first electrode and the second electrode. The dielectric material comprises
a porous substrate material and a liquid sorbed into the porous substrate material.
The aerosol-generating substrate may comprise a non-tobacco material. In preferred
embodiments, the aerosol-generating substrate comprises tobacco. The aerosol-generating
article may further comprise any of the optional and preferred features described
herein with respect to the first aspect of the present invention.
[0062] The present invention also extends to aerosol-generating systems comprise an aerosol-generating
device in combination with an aerosol-generating article in accordance with the first
aspect of the present invention or the second aspect of the present invention.
[0063] Therefore, according to a third aspect of the present invention there is provided
an aerosol-generating system comprising an aerosol-generating device and an aerosol-generating
article according to the first aspect of the present invention or the second aspect
of the present invention, in accordance with any of the embodiments described above.
The aerosol-generating device comprises a power supply, at least one heater, and a
cavity for receiving the aerosol-generating article. The aerosol-generating device
further comprises a first electrical contact for contacting the first electrode of
the capacitor when the aerosol-generating article is received within the cavity, and
a second electrical contact for contacting the second electrode of the capacitor when
the aerosol-generating article is received within the cavity. The aerosol-generating
device also comprises a controller for controlling a supply of power from the power
supply to the at least one heater for heating the aerosol-generating substrate and
the dielectric material and for controlling a supply of power from the power supply
to the capacitor. The controller is configured to measure the capacitance of the capacitor
via the first and second electrical contacts and the controller is configured to terminate
the supply of power from the power supply to the at least one heater when the measured
capacitance exceeds a predetermined threshold.
[0064] In some embodiments, and particularly those embodiments in which the aerosol-generating
substrate comprises a plug or a rod of a tobacco material, the at least one heater
preferably comprises an elongate heater configured for insertion into the aerosol-generating
substrate when the aerosol-generating article is received within the cavity. The elongate
heater may have any suitable shape to facilitate insertion into the aerosol-generating
substrate. For example, the elongate heater may be a heater blade.
[0065] Additionally, or alternatively, the at least one heater may comprise a heater positioned
adjacent to an outer surface of the aerosol-generating article when the aerosol-generating
article is received within the cavity. Such embodiments may be particularly suited
to those embodiments in which the aerosol-generating article comprises a capsule defining
a compartment in which the aerosol-generating substrate is received. For example,
the at least one heater may comprise a substantially annular heater configured to
surround at least a portion of the aerosol-generating article when the aerosol-generating
article is received within the cavity. Additionally, or alternatively, the at least
one heater may comprise a substantially planar heater positioned adjacent to an end
of the aerosol-generating article when the aerosol-generating article is received
within the cavity.
[0066] In any of the embodiments described above, the at least one heater preferably comprises
an electrically resistive material. Suitable electrically resistive materials include
but are not limited to: semiconductors such as doped ceramics, electrically "conductive"
ceramics (such as, for example, molybdenum disilicide), carbon, graphite, metals,
metal alloys and composite materials made of a ceramic material and a metallic material.
Such composite materials may comprise doped or undoped ceramics. Examples of suitable
doped ceramics include doped silicon carbides. Examples of suitable metals include
titanium, zirconium, tantalum and metals from the platinum group. Examples of suitable
metal alloys include stainless steel, nickel-, cobalt-, chromium-, aluminium- titanium-
zirconium-, hafnium-, niobium-, molybdenum-, tantalum-, tungsten-, tin-, gallium-,
manganese- and iron-containing alloys, and super-alloys based on nickel, iron, cobalt,
stainless steel, Timetal® and iron-manganese-aluminium based alloys. In composite
materials, the electrically resistive material may optionally be embedded in, encapsulated
or coated with an insulating material or vice-versa, depending on the kinetics of
energy transfer and the external physicochemical properties required. Examples of
suitable composite heater elements are disclosed in
US-A-5 498 855,
WO-A-03/095688 and
US-A-5 514 630.
[0067] In any of the embodiments described above, the first and second electrical contacts
may be provided on an end wall of the cavity. In some embodiments, the first and second
electrical contacts may be concentrically provided on the end wall to facilitate contact
with the first and second electrodes regardless of the rotational orientation of the
aerosol-generating article. For example, the first electrical contact may be substantially
annular and the second electrical contact may be substantially circular or substantially
annular, wherein the second electrical contact is provided concentrically within the
first electrical contact, and wherein the first and second electrical contacts are
spaced apart.
[0068] Alternatively, the first and second electrical contacts may be provided on an inner
surface of a longitudinally extending wall of the cavity. In some embodiments, each
of the first and second electrical contacts may be annular and extend around the circumference
of the cavity to facilitate contact with the first and second electrodes respectively,
regardless of the rotational orientation of the aerosol-generating article.
[0069] The invention will now be further described, by way of example only, with reference
to the accompanying drawings in which:
Figure 1 shows an aerosol-generating article in accordance with the present invention;
Figure 2 shows the aerosol-generating article of Figure 1 inserted into an aerosol-generating
device to form an aerosol-generating system in accordance with the present invention;
Figures 3 to 6 show alternative embodiments of the aerosol-generating article of Figure
1;
Figure 7 shows an alternative aerosol-generating article in accordance with the present
invention;
Figure 8 shows the aerosol-generating article of Figure 7 inserted into an aerosol-generating
device to form an alternative aerosol-generating system in accordance with the present
invention;
Figure 9 shows a further alternative aerosol-generating article in accordance with
the present invention;
Figure 10 shows the aerosol-generating article of Figure 9 inserted into an aerosol-generating
device to form a further alternative aerosol-generating system in accordance with
the present invention; and
Figure 11 shows an alternative embodiment of the aerosol-generating article of Figure
9.
[0070] Figure 1 shows an aerosol-generating article 10 comprising an aerosol-generating
substrate 12, a hollow acetate tube 14, a polymeric filter 16, a mouthpiece 18 and
an outer wrapper 20. The aerosol-generating substrate 12 comprises a plug of tobacco
and the mouthpiece 18 comprises a plug of cellulose acetate fibres.
[0071] The aerosol-generating article 10 further comprises a capacitor 22 provided on an
outer surface of the outer wrapper 20, adjacent to the aerosol-generating substrate
12. The capacitor 22 comprises a first electrode 24 secured to the outer wrapper 20,
a dielectric material 26 overlying a first portion of the first electrode 24, and
a second electrode 28 overlying the dielectric material. The dielectric material 26
comprises a sheet of paper and a liquid sorbed into the sheet of paper. The first
electrode 24 comprises a second portion 29 that does not underlie the dielectric material
26 or the second electrode 28, the second portion 29 facilitating connection of the
first electrode 24 to an electrical contact when the aerosol-generating article 10
is received within an aerosol-generating device, as described in detail with reference
to Figure 2.
[0072] The thickness of the capacitor 22 has been exaggerated in Figure 1 (and Figures 2
to 11) to clearly show the first electrode 24, the dielectric material 26 and the
second electrode 28.
[0073] Figure 2 shows the aerosol-forming article 10 inserted into an electrically heated
aerosol-generating device 30. The device 30 comprises a housing 31 defining a cavity
33 for receiving the aerosol-generating article 10. The device 30 includes a heater
32 comprising a base portion 34 and a heater blade 36 that penetrates the aerosol-generating
substrate 12 when the aerosol-generating article 10 is inserted into the cavity 33.
The heater blade 36 comprises a resistive heating coil 38 for resistively heating
the upstream end of the aerosol-generating article 10. A controller 42 controls the
operation of the device 30, including the supply of electrical current from a battery
40 to the resistive heating coil 38 of the heater blade 36.
[0074] The aerosol-generating device 30 further comprises a first electrical contact 44
and a second electrical contact 46 arranged to contact the first electrode 24 and
the second electrode 28 respectively, when the aerosol-generating article 10 is fully
inserted into the cavity 33. The first and second electrical contacts 44, 46 are annular
so that they contact the first and second electrodes 24, 28 regardless of the rotational
orientation of the aerosol-generating article 10 within the cavity 33.
[0075] During use, the controller 42 supplies electrical current from the battery 40 to
the resistive heating coil 38 to heat the aerosol-generating substrate 12 and the
capacitor 22. During the heating cycle, at least some of the liquid sorbed into the
paper sheet of the dielectric material 26 is evaporated, resulting in a change in
the capacitance between the first electrode 24 and the second electrode 28, which
is measured by the controller 42 via the first and second electrical contacts 44,
46. When the measured capacitance reaches a predetermined level indicative of a significant
depletion of volatile compounds from the aerosol-generating substrate 12, the controller
42 terminates the supply of electrical current from the battery 40 to the resistive
heating coil 38 to prevent further heating of the aerosol-generating substrate 12.
[0076] Figures 3 to 6 illustrate alternative embodiments of the aerosol-generating article
10, each comprising a different configuration of the capacitor. Like reference numerals
are used to designate like parts.
[0077] The aerosol-generating article 100 shown in Figure 3 includes a capacitor 122 comprising
a first electrode 124 provided on an inner surface of the outer wrapper 20 and a second
electrode 128 provided on the outer surface of the outer wrapper 20, the second electrode
128 overlying a first portion of the first electrode 124. In this embodiment, the
dielectric material 126 is formed by the portion of the outer wrapper 20 positioned
between the first and second electrodes 124, 128. A second portion 129 of the first
electrode 124 protrudes from the upstream end of the aerosol-generating article 100
to facilitate connection of the first electrode 124 to an electrical contact in an
aerosol-generating device.
[0078] The aerosol-generating article 200 shown in Figure 4 includes a capacitor 222 comprising
a first electrode 224 provided within the aerosol-generating substrate 12, a dielectric
material 226 overlying a first portion of the first electrode 224, and a second electrode
228 overlying the dielectric material 226 and underlying the outer wrapper 20. An
aperture 227 provided in the outer wrapper 20 facilitates connection of the second
electrode 228 to an electrical contact in an aerosol-generating device. A second portion
229 of the first electrode 224 protrudes from the upstream end of the aerosol-generating
article 200 to facilitate connection of the first electrode 224 to an electrical contact
in an aerosol-generating device.
[0079] The aerosol-generating article 300 shown in Figure 5 includes a capacitor 322 comprising
an annular first electrode 324 provided on the outer surface of the outer wrapper
20, a dielectric material 326 overlying a first portion of the first electrode 324,
and a second electrode 328 overlying the dielectric material 326. A second portion
329 of the first electrode 324 does not underlie the dielectric material 326 or the
second electrode 328 to facilitate connection of the first electrode 324 to an electrical
contact in an aerosol-generating device. Using annular first and second electrodes
324, 328 can eliminate the need to provide annular electrical contacts in the aerosol-generating
device while still permitting the insertion of the aerosol-generating article 300
into the aerosol-generating device in any rotational orientation.
[0080] The aerosol-generating article 400 shown in Figure 6 includes a capacitor 422 comprising
a first electrode 424 provided on the outer surface of the outer wrapper 20 and a
second electrode 428 provided on the outer surface of the outer wrapper 20 on an opposite
side of the aerosol-generating article 400. In this embodiment, the dielectric material
426 is formed by the portion of the aerosol-generating substrate 12 positioned between
the first and second electrodes 424, 428.
[0081] Figure 7 shows an alternative aerosol-generating article 500 comprising an aerosol-generating
substrate 512 wrapped in an outer wrapper 520. The aerosol-generating substrate 512
is a tobacco rod.
[0082] The aerosol-generating article 500 further comprises a capacitor 522 provided on
an outer surface of the outer wrapper 520. The capacitor 522 comprises a first electrode
524 secured to the outer wrapper 520, a dielectric material 526 overlying a first
portion of the first electrode 524, and a second electrode 528 overlying the dielectric
material. The dielectric material 526 comprises a sheet of paper and a liquid sorbed
into the sheet of paper. The first electrode 524 comprises a second portion 529 that
does not underlie the dielectric material 526 or the second electrode 528, the second
portion 529 facilitating connection of the first electrode 524 to an electrical contact
when the aerosol-generating article 500 is received within an aerosol-generating device,
as described in detail with reference to Figure 8.
[0083] Figure 8 shows the aerosol-forming article 500 inserted into an electrically heated
aerosol-generating device 600. The device 600 comprises a housing 631 defining a cavity
633 for receiving the aerosol-generating article 500. A removable end cap 602 can
be removed to allow insertion of the aerosol-generating article 500 into the cavity
633, the removable end cap 602 comprising an air inlet 604 to admit air into the cavity
633 during use. The device 600 includes an annular heater 632 into which the aerosol-generating
article 500 is received. A controller 642 controls the operation of the device 600,
including the supply of electrical current from a battery 640 to the annular heater
632. A mouthpiece 606 at a downstream end of the device 600 includes an air outlet
608 to allow a consumer to draw air through the aerosol-generating article 500 and
the device 600 during use.
[0084] The aerosol-generating device 600 further comprises a first electrical contact 644
and a second electrical contact 646 arranged to contact the first electrode 524 and
the second electrode 528 respectively, when the aerosol-generating article 500 is
fully inserted into the cavity 633. The first and second electrical contacts 644,
646 are annular so that they contact the first and second electrodes 524, 528 regardless
of the rotational orientation of the aerosol-generating article 500 within the cavity
633.
[0085] During use, the controller 642 supplies electrical current from the battery 640 to
the annular heater 632 to heat the aerosol-generating substrate 512 and the capacitor
522. During the heating cycle, at least some of the liquid sorbed into the paper sheet
of the dielectric material 526 is evaporated, resulting in a change in the capacitance
between the first electrode 524 and the second electrode 528, which is measured by
the controller 642 via the first and second electrical contacts 644, 646. When the
measured capacitance reaches a predetermined level indicative of a significant depletion
of volatile compounds from the aerosol-generating substrate 512, the controller 642
terminates the supply of electrical current from the battery 640 to the annular heater
632 to prevent further heating of the aerosol-generating substrate 512.
[0086] The skilled person will appreciate that any of the alternative capacitor arrangements
described with reference to Figures 3 to 6 can be applied equally to the aerosol-generating
article 500 shown in Figure 7.
[0087] Figure 9 shows a further alternative aerosol-generating article 700 comprising a
capsule 702 defining a compartment in which an aerosol-generating substrate 712 is
provided. The aerosol-generating substrate 712 comprises loose tobacco. The capsule
712 comprises a base on which a capacitor 722 is provided, and a seal 704 connected
to the capsule 702 to seal an open end of the compartment opposite the base.
[0088] The capacitor 722 comprises a first electrode 724 secured to the base of the capsule
702, a dielectric material 726 overlying a first portion of the first electrode 724,
and a second electrode 728 overlying the dielectric material. The dielectric material
726 comprises a sheet of paper and a liquid sorbed into the sheet of paper. The first
electrode 724 comprises a second portion 729 that does not underlie the dielectric
material 726 or the second electrode 728, the second portion 729 facilitating connection
of the first electrode 724 to an electrical contact when the aerosol-generating article
700 is received within an aerosol-generating device, as described in detail with reference
to Figure 10.
[0089] Figure 10 shows the aerosol-forming article 700 inserted into an electrically heated
aerosol-generating device 800. The device 800 comprises a housing 831 defining a cavity
833 for receiving the aerosol-generating article 700. A removable mouthpiece 802 can
be removed to allow insertion of the aerosol-generating article 700 into the cavity
833, the removable mouthpiece 802 comprising a piercing element 803 for breaking the
seal 704 on the aerosol-generating article 700 when the removable mouthpiece 802 is
reattached to the housing 831. The removable mouthpiece 802 further comprises an air
inlet 804 for admitting air into the cavity 833 and an air outlet 805 extending through
the piercing element 803 to allow a consumer to draw air out of the cavity 833 during
use.
[0090] The device 800 includes an annular heater 832 into which the aerosol-generating article
700 is received. A controller 842 controls the operation of the device 800, including
the supply of electrical current from a battery 840 to the annular heater 832.
[0091] The aerosol-generating device 800 further comprises a first electrical contact 844
and a second electrical contact 846 arranged to contact the first electrode 724 and
the second electrode 728 respectively, when the aerosol-generating article 700 is
fully inserted into the cavity 833. The first electrical contact 844 is annular so
that it contacts the first electrode 724 regardless of the rotational orientation
of the aerosol-generating article 700 within the cavity 833.
[0092] During use, the controller 842 supplies electrical current from the battery 840 to
the annular heater 832 to heat the aerosol-generating substrate 712 and the capacitor
722. During the heating cycle, at least some of the liquid sorbed into the paper sheet
of the dielectric material 726 is evaporated, resulting in a change in the capacitance
between the first electrode 724 and the second electrode 728, which is measured by
the controller 842 via the first and second electrical contacts 844, 846. When the
measured capacitance reaches a predetermined level indicative of a significant depletion
of volatile compounds from the aerosol-generating substrate 712, the controller 842
terminates the supply of electrical current from the battery 840 to the annular heater
832 to prevent further heating of the aerosol-generating substrate 712.
[0093] Figures 11 illustrates and alternative embodiment of the aerosol-generating article
700, wherein like reference numerals are used to designate like parts.
[0094] The aerosol-generating article 900 shown in Figure 11 includes a capacitor 922 comprising
a first electrode 924, a dielectric material 926 and a second electrode 928 all provided
concentrically on the base of the capsule 702. The first electrode 924 has a larger
diameter than the dielectric material 926 and the second electrode 928 so that the
first electrode comprises an annular second portion 929 to facilitate connection of
the first electrode 924 to an electric contact in an aerosol-generating device. Forming
an annular second portion 929 of the first electrode 924 can eliminate the need to
provide annular electrical contacts in the aerosol-generating device while still permitting
the insertion of the aerosol-generating article 900 into the aerosol-generating device
in any rotational orientation.
1. An aerosol-generating article (10) comprising:
an aerosol-generating substrate (12) comprising tobacco, wherein the aerosol-generating
substrate (12) is non-liquid at room temperature; and
a capacitor (22) comprising a first electrode (24), a second electrode (28), and a
dielectric material (26) positioned between the first electrode (24) and the second
electrode (28), wherein the dielectric material (26) comprises a porous substrate
material and a liquid sorbed into the porous substrate material.
2. An aerosol-generating article (10) according to claim 1, further comprising a wrapper
(20) wrapped around the aerosol-generating substrate (12), wherein the capacitor (22)
is provided on an outer surface of the wrapper (20).
3. An aerosol-generating article (10) according to claim 2, wherein the first electrode
(24) overlies at least a portion of the wrapper (20), wherein the dielectric material
(26) overlies a first portion of the first electrode (24), wherein the second electrode
(28) overlies at least a portion of the dielectric material (26), and wherein the
first electrode (24) comprises a second portion (29) that does not underlie either
the dielectric material (26) or the second electrode (28).
4. An aerosol-generating article (100) according to claim 1, further comprising a wrapper
(20) wrapped around the aerosol-generating substrate (12), wherein the first electrode
(124) underlies at least a portion of the wrapper (20), wherein the second electrode
(128) overlies at least a portion of the wrapper (20), and wherein the portion of
the wrapper (20) positioned between the first electrode (124) and the second electrode
(128) forms the dielectric material (126).
5. An aerosol-generating article (200) according to claim 1, further comprising a wrapper
(20) wrapped around the aerosol-generating substrate (12), wherein the capacitor (222)
is positioned between the wrapper (20) and the aerosol-generating substrate (12).
6. An aerosol-generating article (300) according to any preceding claim, wherein the
aerosol-generating substrate (12) has a substantially cylindrical shape, and wherein
the capacitor (322) has a substantially annular shape and circumscribes at least a
portion of the aerosol-generating substrate (12).
7. An aerosol-generating article (700) according to claim 1, further comprising a capsule
(702) defining a compartment in which the aerosol-generating substrate (712) is received,
wherein the capacitor (722) is provided on an outer surface of the capsule (702).
8. An aerosol-generating article (700) according to claim 7, wherein the capsule (702)
comprises a base, a substantially cylindrical wall extending from the base, and an
open end opposite the base, the aerosol-generating article (700) further comprising
a seal (704) connected to the capsule (702) and extending across the open end to seal
the aerosol-generating substrate (712) within the compartment, and wherein the capacitor
(722) is provided on the base of the capsule (702).
9. An aerosol-generating article (700) according to claim 8, wherein the base is substantially
circular, wherein the first electrode (724) overlies at least a portion of the base,
wherein the dielectric material (726) overlies a first portion of the first electrode
(724), wherein the second electrode (728) overlies at least a portion of the dielectric
material (726) and overlies the centre of the substantially circular base, and wherein
the first electrode (724) comprises a second portion (729) that does not underlie
either the dielectric material (726) or the second electrode (728), the second portion
(729) being spaced apart from the centre of the substantially circular base.
10. An aerosol-generating article (700) according to claim 9, wherein the first electrode
(724) has a substantially circular shape and concentrically overlies at least a portion
of the base, wherein the dielectric material (726) has a substantially circular shape
and concentrically overlies the first portion of the first electrode (724), wherein
the second electrode (728) has a substantially circular shape and concentrically overlies
at least a portion of the dielectric material (726), and wherein a diameter of the
first electrode (724) is larger than a diameter of the dielectric material (726) and
the second electrode (728) so that the second portion (729) of the first electrode
(724) has an annular shape provided concentrically on the substantially circular base.
11. An aerosol-generating article (10) according to any preceding claim, wherein the dielectric
material (26) comprises a paper sheet and the at least one liquid sorbed onto the
paper sheet.
12. An aerosol-generating article (400) according to claim 1, wherein at least a portion
of the aerosol-generating substrate (12) is positioned between the first electrode
(424) and the second electrode (428) so that the portion of the aerosol-generating
substrate (12) positioned between the first electrode (424) and the second electrode
(428) forms the dielectric material (426).
13. An aerosol-generating system comprising:
an aerosol-generating article (10) according to any preceding claim; and
an aerosol-generating device (30) comprising:
a power supply (40);
at least one heater (32);
a cavity (33) for receiving the aerosol-generating article (10);
a first electrical contact (44) for contacting the first electrode (24) of the capacitor
(22) when the aerosol-generating article (10) is received within the cavity (33);
a second electrical contact (46) for contacting the second electrode (28) of the capacitor
(22) when the aerosol-generating article (10) is received within the cavity (33);
and
a controller (42) for controlling a supply of power from the power supply (40) to
the at least one heater (32) for heating the aerosol-generating substrate (12) and
the dielectric material (26) and for controlling a supply of power from the power
supply (40) to the capacitor (22), wherein the controller (42) is configured to measure
the capacitance of the capacitor (22) via the first and second electrical contacts
(44, 46) and wherein the controller (42) is configured to terminate the supply of
power from the power supply (40) to the at least one heater (32) when the measured
capacitance exceeds a predetermined threshold.
1. Aerosolerzeugender Artikel (10), aufweisend:
ein aerosolerzeugendes Substrat (12), Tabak aufweisend, wobei
das aerosolerzeugende Substrat (12) bei Raumtemperatur nicht flüssig ist; und
einen Kondensator (22), eine erste Elektrode (24), eine zweite Elektrode (28) und
ein dielektrisches Material (26) aufweisend, das zwischen der ersten Elektrode (24)
und der zweiten Elektrode (28) positioniert ist, wobei das dielektrische Material
(26) ein poröses Substratmaterial und eine in das poröse Substratmaterial sorbierte
Flüssigkeit aufweist.
2. Aerosolerzeugender Artikel (10) nach Anspruch 1, ferner eine Umhüllung (20) aufweisend,
die um das aerosolerzeugende Substrat (12) gehüllt ist, wobei der Kondensator (22)
an einer Außenfläche der Umhüllung (20) vorgesehen ist.
3. Aerosolerzeugender Artikel (10) nach Anspruch 2, wobei die erste Elektrode (24) über
zumindest einem Abschnitt der Umhüllung (20) liegt, wobei das dielektrische Material
(26) über einem ersten Abschnitt der ersten Elektrode (24) liegt, wobei die zweite
Elektrode (28) über zumindest einem Abschnitt des dielektrischen Materials (26) liegt,
und wobei die erste Elektrode (24) einen zweiten Abschnitt (29) aufweist, der weder
unter dem dielektrischen Material (26) noch der zweiten Elektrode (28) liegt.
4. Aerosolerzeugender Artikel (100) nach Anspruch 1, ferner eine Umhüllung (20) aufweisend,
die um das aerosolerzeugende Substrat (12) gehüllt ist, wobei die erste Elektrode
(124) unter zumindest einem Abschnitt der Umhüllung (20) liegt, wobei die zweite Elektrode
(128) über zumindest einem Abschnitt der Umhüllung (20) liegt, und wobei der Abschnitt
der Umhüllung (20), der zwischen der ersten Elektrode (124) und der zweiten Elektrode
(128) positioniert ist, das dielektrische Material (126) ausbildet.
5. Aerosolerzeugender Artikel (200) nach Anspruch 1, ferner eine Umhüllung (20) aufweisend,
die um das aerosolerzeugende Substrat (12) gehüllt ist, wobei der Kondensator (222)
zwischen der Umhüllung (20) und dem aerosolerzeugenden Substrat (12) positioniert
ist.
6. Aerosolerzeugender Artikel (300) nach einem der vorhergehenden Ansprüche, wobei das
aerosolerzeugende Substrat (12) eine im Wesentlichen zylindrische Form hat und wobei
der Kondensator (322) eine im Wesentlichen ringförmige Form hat und zumindest einen
Teil des aerosolerzeugenden Substrats (12) abgrenzt.
7. Aerosolerzeugender Artikel (700) nach Anspruch 1, ferner eine Kapsel (702) aufweisend,
die eine Kammer definiert, in der das aerosolerzeugende Substrat (712) aufgenommen
ist, wobei der Kondensator (722) an einer Außenfläche der Kapsel (702) vorgesehen
ist.
8. Aerosolerzeugender Artikel (700) nach Anspruch 7, wobei die Kapsel (702) eine Basis,
eine im Wesentlichen zylindrische Wand, die sich von der Basis erstreckt, und ein
offenes Ende gegenüber der Basis aufweist, wobei der aerosolerzeugende Artikel (700)
ferner eine Dichtung (704) aufweist, die mit der Kapsel (702) verbunden ist und sich
über das offene Ende hinweg erstreckt, um das aerosolerzeugende Substrat (712) innerhalb
der Kammer abzudichten, und wobei der Kondensator (722) auf der Basis der Kapsel (702)
vorgesehen ist.
9. Aerosolerzeugender Artikel (700) nach Anspruch 8, wobei die Basis im Wesentlichen
kreisförmig ist, wobei die erste Elektrode (724) über zumindest einem Abschnitt der
Basis liegt, wobei das dielektrische Material (726) über einem ersten Abschnitt der
ersten Elektrode (724) liegt, wobei die zweite Elektrode (728) über zumindest einem
Abschnitt des dielektrischen Materials (726) und über dem Zentrum der im Wesentlichen
kreisförmigen Basis liegt, und wobei die erste Elektrode (724) einen zweiten Abschnitt
(729) aufweist, der weder unter dem dielektrischen Material (726) noch der zweiten
Elektrode (728) liegt, wobei der zweite Abschnitt (729) von dem Zentrum der im Wesentlichen
kreisförmigen Basis beabstandet ist.
10. Aerosolerzeugender Artikel (700) nach Anspruch 9, wobei die erste Elektrode (724)
eine im Wesentlichen kreisförmige Form aufweist und konzentrisch über zumindest einem
Abschnitt der Basis liegt, wobei das dielektrische Material (726) eine im Wesentlichen
kreisförmige Form aufweist und konzentrisch über dem ersten Abschnitt der ersten Elektrode
(724) liegt, wobei die zweite Elektrode (728) eine im Wesentlichen kreisförmige Form
aufweist und konzentrisch über zumindest einem Abschnitt des dielektrischen Materials
(726) liegt, und wobei ein Durchmesser der ersten Elektrode (724) größer ist als ein
Durchmesser des dielektrischen Materials (726) und der zweiten Elektrode (728), sodass
der zweite Abschnitt (729) der ersten Elektrode (724) eine ringförmige Form aufweist,
die konzentrisch an der im Wesentlichen kreisförmigen Basis vorgesehen ist.
11. Aerosolerzeugender Artikel (10) nach einem der vorhergehenden Ansprüche, wobei das
dielektrische Material (26) ein Papierflächengebilde und die zumindest eine Flüssigkeit
aufweist, die auf das Papierflächengebilde sorbiert ist.
12. Aerosolerzeugender Artikel (400) nach Anspruch 1, wobei zumindest ein Abschnitt des
aerosolerzeugenden Substrats (12) zwischen der ersten Elektrode (424) und der zweiten
Elektrode (428) positioniert ist, sodass der Abschnitt des aerosolerzeugenden Substrats
(12), der zwischen der ersten Elektrode (424) und der zweiten Elektrode (428) positioniert
ist, das dielektrische Material (426) ausbildet.
13. Aerosolerzeugungssystem, aufweisend:
einen aerosolerzeugenden Artikel (10) nach einem der vorhergehenden Ansprüche; und
eine Aerosolerzeugungsvorrichtung (30), die aufweist:
eine Energieversorgung (40);
zumindest eine Heizvorrichtung (32);
einen Hohlraum (33) zum Aufnehmen des aerosolerzeugenden Artikels (10);
einen ersten elektrischen Kontakt (44) zum Kontaktieren der ersten Elektrode (24)
des Kondensators (22), wenn der aerosolerzeugende Artikel (10) innerhalb des Hohlraums
(33) aufgenommen ist;
einen zweiten elektrischen Kontakt (46) zum Kontaktieren der zweiten Elektrode (28)
des Kondensators (22), wenn der aerosolerzeugende Artikel (10) innerhalb des Hohlraums
(33) aufgenommen ist; und
Steuerung (42) zum Regeln einer Energieversorgung von der Energieversorgung (40) zu
der zumindest einen Heizvorrichtung (32) zum Erwärmen des aerosolerzeugenden Substrats
(12) und des dielektrischen Materials (26) und zum Regeln einer Energieversorgung
von der Energieversorgung (40) zu dem Kondensator (22), wobei die Steuerung (42) ausgelegt
ist, um die Kapazität des Kondensators (22) über den ersten und zweiten elektrischen
Kontakt (44, 46) zu messen und wobei die Steuerung (42) ausgelegt ist, die Energieversorgung
von der Energieversorgung (40) zu der zumindest einen Heizvorrichtung (32) zu beenden,
wenn die gemessene Kapazität einen vorbestimmten Schwellenwert überschreitet.
1. Article de génération d'aérosol (10) comprenant :
un substrat générateur d'aérosol (12) comprenant du tabac,
dans lequel le substrat générateur d'aérosol (12) n'est pas liquide à température
ambiante ; et
un condensateur (22) comprenant une première électrode (24), une deuxième électrode
(28), et un matériau diélectrique (26) positionné entre la première électrode (24)
et la deuxième électrode (28), dans lequel le matériau diélectrique (26) comprend
un matériau de substrat poreux et un liquide sorbé dans le matériau de substrat poreux.
2. Article de génération d'aérosol (10) selon la revendication 1, comprenant en outre
une enveloppe (20) enroulée autour du substrat générateur d'aérosol (12), dans lequel
le condensateur (22) est prévu sur une surface extérieure de l'enveloppe (20).
3. Article de génération d'aérosol (10) selon la revendication 2, dans lequel la première
électrode (24) recouvre au moins une partie de l'enveloppe (20), dans lequel le matériau
diélectrique (26) recouvre une première partie de la première électrode (24), dans
lequel la deuxième électrode (28) recouvre au moins une partie du matériau diélectrique
(26), et dans lequel la première électrode (24) comprend une deuxième partie (29)
qui ne repose ni sur le matériau diélectrique (26) ni sur la deuxième électrode (28).
4. Article de génération d'aérosol (100) selon la revendication 1, comprenant en outre
une enveloppe (20) enroulée autour du substrat générateur d'aérosol (12), dans lequel
la première électrode (124) repose sur au moins une partie de l'enveloppe (20), dans
lequel la deuxième électrode (128) recouvre au moins une partie de l'enveloppe (20),
et dans lequel la partie de l'enveloppe (20) positionnée entre la première électrode
(124) et la deuxième électrode (128) forme le matériau diélectrique (126).
5. Article de génération d'aérosol (200) selon la revendication 1, comprenant en outre
une enveloppe (20) enroulée autour du substrat générateur d'aérosol (12), dans lequel
le condensateur (222) est positionné entre l'enveloppe (20) et le substrat générateur
d'aérosol (12).
6. Article de génération d'aérosol (300) selon l'une quelconque des revendications précédentes,
dans lequel le substrat de génération d'aérosol (12) a une forme substantiellement
cylindrique, et dans lequel le condensateur (322) a une forme substantiellement annulaire
et entoure au moins une partie du substrat générateur d'aérosol (12).
7. Article de génération d'aérosol (700) selon la revendication 1, comprenant en outre
une capsule (702) définissant un compartiment dans lequel le substrat générateur d'aérosol
(712) est reçu, dans lequel le condensateur (722) est prévu sur une surface extérieure
de la capsule (702).
8. Article de génération d'aérosol (700) selon la revendication 7, dans lequel la capsule
(702) comprend une base, une paroi sensiblement cylindrique s'étendant depuis la base
et une extrémité ouverte opposée à la base, l'article de génération d'aérosol (700)
comprenant en outre un joint (704) connecté à la capsule (702) et s'étendant à travers
l'extrémité ouverte pour sceller le substrat générateur d'aérosol (712) à l'intérieur
du compartiment, et dans lequel le condensateur (722) est prévu sur la base de la
capsule (702).
9. Article de génération d'aérosol (700) selon la revendication 8, dans lequel la base
est sensiblement circulaire, dans lequel la première électrode (724) recouvre au moins
une partie de la base, dans lequel le matériau diélectrique (726) recouvre une première
partie de la première électrode (724), dans lequel la deuxième électrode (728) recouvre
au moins une partie du matériau diélectrique (726) et recouvre le centre de la base
sensiblement circulaire, et dans lequel la première électrode (724) comprend une deuxième
partie (729) qui ne repose ni sur le matériau diélectrique (726) ni sur la deuxième
électrode (728), la deuxième partie (729) étant espacée du centre de la base sensiblement
circulaire.
10. Article de génération d'aérosol (700) selon la revendication 9, dans lequel la première
électrode (724) a une forme sensiblement circulaire et recouvre concentriquement au
moins une partie de la base, dans lequel le matériau diélectrique (726) a une forme
sensiblement circulaire et recouvre concentriquement la première partie de la première
électrode (724), la deuxième électrode (728) a une forme sensiblement circulaire et
recouvre concentriquement au moins une partie du matériau diélectrique (726), et dans
lequel un diamètre de la première électrode (724) est plus grand qu'un diamètre du
matériau diélectrique (726) et de la deuxième électrode (728) de sorte que la deuxième
partie (729) de la première électrode (724) a une forme annulaire prévue concentriquement
sur la base sensiblement circulaire.
11. Article de génération d'aérosol (10) selon l'une quelconque des revendications précédentes,
dans lequel le matériau diélectrique (26) comprend une feuille de papier et l'au moins
un liquide sorbé sur la feuille de papier.
12. Article de génération d'aérosol (400) selon la revendication 1, dans lequel au moins
une partie du substrat générateur d'aérosol (12) est positionnée entre la première
électrode (424) et la deuxième électrode (428) de sorte que la partie du substrat
générateur d'aérosol (12) positionné entre la première électrode (424) et la deuxième
électrode (428) forme le matériau diélectrique (426) .
13. Système de génération d'aérosol comprenant :
un article de génération d'aérosol (10) selon l'une quelconque revendication précédente
; et
un dispositif de génération d'aérosol (30) comprenant :
une alimentation électrique (40) ;
au moins un dispositif de chauffage (32) ;
une cavité (33) pour la réception de l'article de génération d'aérosol (10) ;
un premier contact électrique (44) pour mettre en contact la première électrode (24)
du condensateur (22) lorsque l'article de génération d'aérosol (10) est reçu à l'intérieur
de la cavité (33) ;
un deuxième contact électrique (46) pour mettre en contact la deuxième électrode (28)
du condensateur (22) lorsque l'article de génération d'aérosol (10) est reçu à l'intérieur
de la cavité (33) ; et
un contrôleur (42) pour contrôler une alimentation en énergie électrique depuis l'alimentation
électrique (40) vers l'au moins un élément de chauffage (32) pour chauffer le substrat
générateur d'aérosol (12) et le matériau diélectrique (26) et pour contrôler une alimentation
de puissance de l'alimentation (40) au condensateur (22), dans lequel le contrôleur
(42) est configuré pour mesurer la capacité du condensateur (22) via les premier et
deuxième contacts électriques (44, 46) et dans lequel le contrôleur (42) est configuré
pour mettre fin à l'alimentation en énergie électrique de l'alimentation électrique
(40) à l'au moins un élément de chauffage (32) lorsque la capacité mesurée dépasse
un seuil prédéterminé.